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The Prediction of Jet Noise Ground Effects Using an Acoustic Analogy and a Tailored Green's Function

机译:用声学类比和量身定制的格林函数预测射流噪声的地面效应

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摘要

An assessment of an acoustic analogy for the mixing noise component of jet noise in the presence of an infinite surface is presented. The reflection of jet noise by the ground changes the distribution of acoustic energy and is characterized by constructive and destructive interference patterns. The equivalent sources are modeled based on the two-point cross- correlation of the turbulent velocity fluctuations and a steady Reynolds-Averaged Navier-Stokes (RANS) solution. Propagation effects, due to reflection by the surface and refaction by the jet shear layer, are taken into account by calculating the vector Green's function of the linearized Euler equations (LEE). The vector Green's function of the LEE is written in relation to Lilley's equation; that is, approximated with matched asymptotic solutions and the Green's function of the convective Helmholtz equation. The Green's function of the convective Helmholtz equation for an infinite flat plane with impedance is the Weyl-van der Pol equation. Predictions are compared with an unheated Mach 0.95 jet produced by a nozzle with an exit diameter of 0.3302 meters. Microphones are placed at various heights and distances from the nozzle exit in the peak jet noise direction above an acoustically hard and an asphalt surface. The predictions are shown to accurately capture jet noise ground effects that are characterized by constructive and destructive interference patterns in the mid- and far-field and capture overall trends in the near-field.
机译:提出了在存在无限表面的情况下对射流噪声的混合噪声分量进行声学类比的评估。地面对射流噪声的反射改变了声能的分布,并具有相长和相消干涉图样。基于湍流速度波动的两点互相关和稳定的雷诺平均Navier-Stokes(RANS)解决方案对等效源进行建模。通过计算线性化的欧拉方程(LEE)的矢量格林函数,可以考虑由于表面反射和射流剪切层反射而产生的传播效应。 LEE的矢量格林函数是关于Lilley方程编写的;也就是说,用匹配的渐近解和对流Helmholtz方程的格林函数进行近似。对于具有阻抗的无限平面,对流Helmholtz方程的格林函数是Weyl-van der Pol方程。将预测结果与出口直径为0.3302米的喷嘴产生的未加热马赫0.95射流进行比较。麦克风在吸声硬质和柏油表面上方,位于喷嘴喷流峰值方向上与喷嘴出口的高度和距离不同。这些预测表明可以准确捕获以中场和远场为特征和破坏性干涉图为特征的喷射噪声地面效应,并捕获近场的总体趋势。

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    Miller, Steven A. E.;

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  • 年度 2013
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